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基于编码融合的线性光学高阈值量子计算

Encoded-Fusion-Based Quantum Computation for High Thresholds with Linear Optics.

作者信息

Song Wooyeong, Kang Nuri, Kim Yong-Su, Lee Seung-Woo

机构信息

Center for Quantum Information, <a href="https://ror.org/05kzfa883">Korea Institute of Science and Technology (KIST)</a>, Seoul 02792, Republic of Korea.

Department of Physics, <a href="https://ror.org/047dqcg40">Korea University</a>, Seoul 02841, Republic of Korea.

出版信息

Phys Rev Lett. 2024 Aug 2;133(5):050605. doi: 10.1103/PhysRevLett.133.050605.

Abstract

We propose a fault-tolerant quantum computation scheme in a measurement-based manner with finite-sized entangled resource states and encoded-fusion scheme with linear optics. The encoded fusion is an entangled measurement devised to enhance the fusion success probability in the presence of losses and errors based on a quantum error-correcting code. We apply an encoded-fusion scheme, which can be performed with linear optics and active feedforwards to implement the generalized Shor code, to construct a fault-tolerant network configuration in a three-dimensional Raussendorf-Harrington-Goyal lattice based on the surface code. Numerical simulations show that our scheme allows us to achieve up to 10 times higher loss thresholds than nonencoded fusion approaches with limited numbers of photons used in fusion. Our scheme paves an efficient route toward fault-tolerant quantum computing with finite-sized entangled resource states and linear optics.

摘要

我们提出了一种基于测量的容错量子计算方案,该方案使用有限尺寸的纠缠资源态,并采用线性光学的编码融合方案。编码融合是一种纠缠测量,旨在基于量子纠错码在存在损耗和误差的情况下提高融合成功概率。我们应用一种可通过线性光学和主动前馈实现的编码融合方案来实现广义Shor码,以基于表面码在三维Raussendorf-Harrington-Goyal晶格中构建容错网络配置。数值模拟表明,与在融合中使用有限数量光子的非编码融合方法相比,我们的方案使我们能够实现高达10倍的更高损耗阈值。我们的方案为利用有限尺寸的纠缠资源态和线性光学实现容错量子计算铺平了一条有效途径。

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